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Updated: Jul 26, 2026

Electrophysiological Analysis of human Pluripotent Stem Cell-derived Cardiomyocytes hPSC-CMs Using Multi-electrode Arrays MEAs
Published on: May 12, 2017
Enhanced intracellular recording in cardiomyocytes via soft ionic-electronic conductive interfaces of PEDOT:
Duote Cai1, Qunchen Yuan2, Peng Sun3
1General Surgery Department, Children's Hospital, Zhejiang University School of Medicine, National Clinical Research Center for Children's Health, Hangzhou, 310052, China.
Abstract:
Precise recording and stimulation of cardiomyocyte electrical activity with high spatiotemporal resolution is critical for understanding cardiac electrophysiology and associated pathologies. Here, we present a high-performance soft conductive polymer interface based on poly (3,4-ethylenedioxythiophene): polystyrene sulfonate (PEDOT: PSS)-modified electrodes for reliable intracellular electrophysiological recording. The electrodes are fabricated using standard microfabrication followed by electrochemical electropolymerization of PEDOT: PSS, a conductive polymer known for its mixed ionic-electronic conductivity, biocompatibility, and mechanical softness. Compared to bare Au electrodes, PEDOT: PSS-modified electrodes exhibit significantly reduced impedance, enhanced charge storage capacity, and improved electrode-cell coupling. Primary cardiomyocytes cultured on the modified surfaces show robust adhesion and high viability. Using a self-developed biosensing-regulating electrophysiological system, PEDOT: PSS-modified electrodes enable repeated intracellular action potential recordings with high amplitude, high signal-to-noise ratio, and stable waveforms across multiple electroporation cycles and over 5 days. These findings demonstrate the potential of PEDOT: PSS-modified electrodes as minimally invasive, high-fidelity bioelectronic interfaces for cardiac electrophysiological research, high-throughput drug screening, and future implantable biomedical applications.

